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带火焰辅助燃料电池的涡扇发动机性能分析:用于多电飞机的推进与发电一体化系统
Performance analysis of a turbofan engine integrated with flame-assisted fuel cells for combined propulsion and power generation with more electric aircrafts
| 作者 | Xinyan Xiua1 · Songsong Maac1 · Fafu Guo · He Liu · Chenghao Li · Chengjie Li · Cong Wang · Jiang Qin · Hongyan Huang |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 325 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | An integrated turbofan engine-FFC system for onboard [power generation](https://www.sciencedirect.com/topics/engineering/power-generation "Learn more about power generation from ScienceDirect's AI-generated Topic Pages") is proposed. |
语言:
中文摘要
摘要 为应对飞机电力需求不断增长以及传统机载发电系统效率低下的问题,燃料电池受到了广泛关注。本文提出了一种将涡扇发动机与火焰辅助燃料电池(FFC)系统相结合的推进与发电一体化系统。值得注意的是,该系统所采用的FFC是一种新型的固体氧化物燃料电池(SOFC)。在本研究中,建立了涡扇发动机和FFC系统的热力学模型。基于建模结果,对FFC-涡扇发动机系统的性能与传统涡扇发动机进行了对比分析。此外,还开展了参数研究,包括涡扇发动机的各种设计参数、飞行工况以及FFC系统运行参数的影响。结果表明,当电动功率占比(EPF)从15%增加至35%时,相较于传统涡扇发动机,FFC-涡扇发动机系统的燃油消耗率(SFC)降低了14.06%,热效率和总效率均提升了超过16%。此外,FFC-涡扇发动机系统表现出更显著的性能优势。在压气机增压比较高、涡轮进口温度较低,以及风扇增压比和涵道比较高的条件下,FFC-涡扇发动机系统实现了更低的SFC和更高的总效率。进一步地,提高燃料利用率和当量比可以降低SFC并提升总效率。最后,基于飞行工况参数的分析表明,FFC-涡扇发动机系统更适用于高空、低速飞行的飞机。
English Abstract
Abstract To address the growing demand for electricity and the low efficiency of conventional onboard power generation systems of aircrafts, fuel cells have received widespread attention. In this paper, an integrated propulsion and power generation system combining the turbofan engine and the flame-assisted fuel cell (FFC) system is proposed. It’s noted that the FFC used in this system is a new type of solid oxide fuel cell (SOFC). In this study, the thermodynamic models of the turbofan engine and the FFC system are established. Based on modeling, the performance of the FFC-Turbofan system is compared with that of a conventional turbofan engine. Additionally, the parametric study is conducted, including the effects of various design parameters of the turbofan engine, flight conditions, and operating parameters of the FFC system . The results indicate that as the electric power fraction (EPF) increases from 15% to 35%, compared to the turbofan engine, the FFC-Turbofan system shows a 14.06% reduction in specific fuel consumption (SFC) and an over 16% increase in thermal efficiency and overall efficiency. Furthermore, the performance advantages of the FFC-Turbofan system are more significant. Also, under conditions of higher compressor pressure ratio and lower turbine inlet temperature, as well as higher fan pressure ratio and higher bypass ratio, the FFC-Turbofan system achieves a lower SFC and higher overall efficiency. Furthermore, the increase of fuel utilisation and equivalence ratio can reduce the SFC and increase the overall efficiency. Finally, based on the analysis of flight condition parameters, the FFC-Turbofan system is preferable for aircrafts at high altitude and low speed.
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SunView 深度解读
该燃料电池-涡扇发动机集成系统对阳光电源航空电气化领域具有启发意义。其能量管理架构与我司PowerTitan储能系统的多能源协同控制理念相通,特别是电功率分配比(EPF)优化策略可借鉴至EV充电站的源网荷协调。文中SOFC高温余热利用技术可启发ST系列PCS在工业储能场景的热电联供方案。建议关注燃料电池DC/DC变换器与我司三电平拓扑、SiC器件的协同应用,以及GFM控制技术在航空混合动力系统中的微网稳定性价值,为未来eVTOL等新型电动航空器储能系统提供技术储备。